研究目的
Investigating the control of bubble formation and symmetry in laser induced cavitation through the analysis of plasma structure and bubble dynamics.
研究成果
The study concludes that the parameters of the laser induced cavitation system can be tuned to optimize repeatability and sphericity of bubble dynamics. Symmetric rebound dynamics is achieved almost deterministically under specific conditions, such as generating a pointlike plasma at the breakdown threshold energy or using a large focusing angle combined with a relatively large pulse energy. However, the process retains a significant level of stochasticity outside these conditions.
研究不足
The study is limited by the stochastic nature of plasma formation, which depends on several parameters including laser beam focusing angle, laser pulse energy, and water impurities. The control of these parameters is partial, and the process retains a significant level of stochasticity.
1:Experimental Design and Method Selection:
The study employs high-speed imaging and intensity measurements of the shockwave system to analyze the structure of the breakdown plasma and the ensuing bubble dynamics.
2:Sample Selection and Data Sources:
Pure water (Milli-Q water,
3:22 μm membrane filter) is used for bubble nucleation. List of Experimental Equipment and Materials:
A pulsed laser (Litron Nano S 35-15), a custom-made fiber optic probe hydrophone (FOPH), and a high-speed camera (Photron FastCam mini UX100) are used.
4:Experimental Procedures and Operational Workflow:
The laser beam is focused in a cavitation box filled with pure water to generate cavitation bubbles. The bubble dynamics and plasma shape are visualized using high-speed imaging, and pressure measurements are conducted using the FOPH.
5:Data Analysis Methods:
The data are analyzed to determine the plasma shape, bubble dynamics, and shockwave characteristics.
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